Related Experiment Video
Updated: Jul 17, 2026

Using High Resolution Computed Tomography to Visualize the Three Dimensional Structure and Function of Plant Vasculature
Published on: April 5, 2013
Hydraulic architecture traits influence the co-optimization of efficiency and safety in cycads
Yu-Kun Pang1, Chuan-Er Ban1, Bo-Tao Qin1
1Guangxi Key Laboratory of Forest Ecology and Conservation, Guangxi Colleges and Universities Key Laboratory for Cultivation and Utilization of Subtropical Forest Plantation, and State Key Laboratory for Conservation and Utilization of Subtropical Agro-Bioresources, College of Forestry, Guangxi University, Daxuedonglu 100, Nanning, Guangxi 530004, China.
Abstract:
As a present-day relict lineage, cycads possess key anatomical traits for understanding the evolution of plant hydraulics; however, how their hydraulic architecture influences the co-optimization of hydraulic safety and efficiency under drought remains unclear. We examined rachis cross-sectional anatomy traits in 20 cycad species and analyzed correlations between hydraulic construction design, tissue fractions, tissue connectivity, and hydraulic function. Additionally, we quantified the distance of cycads from the global hydraulic safety-efficiency trade-off boundary line (LBD) and assessed anatomical contributions to this distance. We found that cycad rachises resembled fern rhizomes, in that most histological and architectural traits did not correlate with embolism vulnerability, except that greater architectural dissection increased vulnerability at the water potential corresponding to 88% embolism. Cycads with higher conduit lumen fractions (Flx) and conduit-phloem connectivity (Ccphl), and lower conduit-parenchyma connectivity (Ccpar), exhibited greater embolism resistance. Notably, cycads showed a longer LBD compared with ferns, noncycad gymnosperms, and angiosperms, and this distance was shortened by larger pit membrane area and fraction and by higher phloem fraction and Flx. Species in Cycadaceae and Zamiaceae exhibited distinct hydraulic architectures. Cycadaceae species, which typically occupy wetter habitats, showed higher Flx and Ccphl, whereas Zamiaceae species from more arid habitats exhibited greater architectural dissection, higher conduit wall fractions (Fwx) and higher Ccpar. These differences reflect contrasting ecological strategies underlying cycad adaptation to divergent environments. Our findings demonstrate that xylem tissue fraction and connectivity play a central role in maintaining hydraulic function under drought, providing insight into water-stress regulation in ancient plant lineages.
More Related Videos
12:11Measurement of Leaf Hydraulic Conductance and Stomatal Conductance and Their Responses to Irradiance and Dehydration Using the Evaporative Flux Method (EFM)
Published on: December 31, 2012
10:47Xylem Water Distribution in Woody Plants Visualized with a Cryo-scanning Electron Microscope
Published on: June 20, 2019
Related Concept Videos
Adaptations that Reduce Water Loss
Design Example: Creating a Hydraulic Model of a Dam Spillway
Responses to Drought and Flooding
Design Example: Design of an Irrigation Channel
C4 Pathway and CAM
C4 Pathway
The C4 pathway is used by plants such as...
Application of Pascal's Law
Hydraulic systems are used to operate automotive brakes, hydraulic jacks, and numerous other mechanical systems. We can derive a relationship between the forces in a simple hydraulic system by applying...